Thermoelectric energy recovery at ionic-liquid/electrode interface
Abstract
A Thermally Chargeable Capacitor containing a binary solution of 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)-imide (EMIMTFSI) in acetonitrile is electrically charged by applying a tempera- ture gradient to two ideally polarisable electrodes. The corresponding thermoelectric coefficient is -1.7 mV/K for platinum foil electrodes and -0.3 mV/K for nanoporous carbon electrodes. Stored electrical energy is extracted by discharging the capacitor through a resistor. The measured capacitance of the electrode/ionic- liquid interface is 5 micro F for each platinum electrode while it becomes four orders of magnitude larger mF for a single nanoporous carbon electrode. Reproducibility of the effect through repeated charging-discharging cycles under a steady-state temperature gradient demonstrates the robustness of the electrical charging pro- cess at the liquid/electrode interface. The acceleration of the charging by convective flows is also observed. This offers the possibility to convert waste-heat into electric energy without exchanging electrons between ions and electrodes, in contrast to what occurs in most thermogalvanic cells.
Cite
@article{arxiv.1506.06546,
title = {Thermoelectric energy recovery at ionic-liquid/electrode interface},
author = {Marco Bonetti and Sawako Nakamae and Bo Tao Huang and Thomas J. Salez and Cecile Wiertel-Gasquet and Michel Roger},
journal= {arXiv preprint arXiv:1506.06546},
year = {2015}
}
Comments
8 pages, 11 figures